Quantitative parameters of bacterial RNA polymerase open-complex formation, stabilization and disruption on a consensus promoter

Author:

Bera Subhas C1,America Pim P B2,Maatsola Santeri3,Seifert Mona1,Ostrofet Eugeniu1,Cnossen Jelmer4,Spermann Monika1,Papini Flávia S1,Depken Martin5,Malinen Anssi M3,Dulin David12ORCID

Affiliation:

1. Junior Research Group 2, Interdisciplinary Center for Clinical Research, Friedrich Alexander University Erlangen-Nürnberg (FAU) , Cauerstr. 3, 91058 Erlangen, Germany

2. Department of Physics and Astronomy, and LaserLaB Amsterdam, Vrije Universiteit Amsterdam , De Boelelaan 1081, 1081 HV, Amsterdam, The Netherlands

3. Department of Life Technologies, University of Turku , Tykistökatu 6A, 6th floor, 20520 Turku, Finland

4. Delft Center for Systems and Control, Delft University of Technology , Delft, the Netherlands

5. Department of Bionanoscience, Kavli Institute of Nanoscience, Delft University of Technology , Van der Maasweg 9, 2629 HZ Delft, The Netherlands

Abstract

Abstract Transcription initiation is the first step in gene expression, and is therefore strongly regulated in all domains of life. The RNA polymerase (RNAP) first associates with the initiation factor $\sigma$ to form a holoenzyme, which binds, bends and opens the promoter in a succession of reversible states. These states are critical for transcription regulation, but remain poorly understood. Here, we addressed the mechanism of open complex formation by monitoring its assembly/disassembly kinetics on individual consensus lacUV5 promoters using high-throughput single-molecule magnetic tweezers. We probed the key protein–DNA interactions governing the open-complex formation and dissociation pathway by modulating the dynamics at different concentrations of monovalent salts and varying temperatures. Consistent with ensemble studies, we observed that RNAP-promoter open (RPO) complex is a stable, slowly reversible state that is preceded by a kinetically significant open intermediate (RPI), from which the holoenzyme dissociates. A strong anion concentration and type dependence indicates that the RPO stabilization may involve sequence-independent interactions between the DNA and the holoenzyme, driven by a non-Coulombic effect consistent with the non-template DNA strand interacting with $\sigma$ and the RNAP $\beta$ subunit. The temperature dependence provides the energy scale of open-complex formation and further supports the existence of additional intermediates.

Funder

University Hospital of the University of Erlangen-Nuremberg

German Research Foundation

BaSyC

Netherlands Ministry of Education, Culture and Science

Netherlands Organisation for Scientific Research

Academy of Finland

Publisher

Oxford University Press (OUP)

Subject

Genetics

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